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DOI10.5194/tc-15-2057-2021
Deciphering the evolution of the Bleis Marscha rock glacier (Val d'Err, eastern Switzerland) with cosmogenic nuclide exposure dating, aerial image correlation, and finite element modeling
Amschwand D.; Ivy-Ochs S.; Frehner M.; Steinemann O.; Christl M.; Vockenhuber C.
发表日期2021
ISSN19940416
起始页码2057
结束页码2081
卷号15期号:4
英文摘要

We constrain the Holocene development of the active Bleis Marscha rock glacier (Err–Julier area, eastern Swiss Alps) with 15 cosmogenic nuclide exposure ages (10Be, 36Cl), horizontal surface creep rate quantification by correlating two orthophotos from 2003 and 2012, and finite element modeling. We used the latter to separate the control on surface movement exerted by topography and material properties. Bleis Marscha is a stack of three overriding lobes whose formation phases are separated by time gaps expressed morphologically as over-steepened terrain steps and kinematically as a sharp downslope decrease in surface movement. The three discrete formation phases appear to be correlated to major Holocene climate shifts: Early Holocene low-elevation lobes (8:9–8.0 ka, after the Younger Dryas), Middle Holocene lobe (5:2–4.8 ka, after the Middle Holocene warm period), and Late Holocene highelevation lobes (active since 2:8 ka, intermittently coexisting with oscillating Bleis Marscha cirque glacierets). The formation phases appear to be controlled in the source area by the climate-sensitive accumulation of an ice-debris mixture in proportions susceptible to rock glacier creep. The ongoing cohesive movement of the older generations requires ice at a depth which is possibly as old as its Early–Middle Holocene debris mantle. Permafrost degradation is attenuated by “thermal filtering” of the coarse debris boulder mantle and implies that the dynamics of the Bleis Marscha lobes that once formed persisted over millennia are less sensitive to climate. The cosmogenic radionuclide inventories of boulders on a moving rock glacier ideally record time since deposition on the rock glacier root but are stochastically altered by boulder instabilities and erosional processes. This work contributes to deciphering the long-term development and the past to quasi-present climate sensitivity of rock glaciers.

. © 2021 Copernicus GmbH. All rights reserved.
英文关键词climate change; cosmogenic radionuclide; dating method; Holocene; image analysis; mantle; radionuclide; rock glacier; Alps; Switzerland
语种英语
来源期刊Cryosphere
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/202266
作者单位Department of Earth Sciences, ETH Zurich, Zurich, 8092, Switzerland; Laboratory of Ion Beam Physics, ETH Zurich, Zurich, 8093, Switzerland; Department of Geosciences, University of Fribourg, Fribourg, 1700, Switzerland
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Amschwand D.,Ivy-Ochs S.,Frehner M.,et al. Deciphering the evolution of the Bleis Marscha rock glacier (Val d'Err, eastern Switzerland) with cosmogenic nuclide exposure dating, aerial image correlation, and finite element modeling[J],2021,15(4).
APA Amschwand D.,Ivy-Ochs S.,Frehner M.,Steinemann O.,Christl M.,&Vockenhuber C..(2021).Deciphering the evolution of the Bleis Marscha rock glacier (Val d'Err, eastern Switzerland) with cosmogenic nuclide exposure dating, aerial image correlation, and finite element modeling.Cryosphere,15(4).
MLA Amschwand D.,et al."Deciphering the evolution of the Bleis Marscha rock glacier (Val d'Err, eastern Switzerland) with cosmogenic nuclide exposure dating, aerial image correlation, and finite element modeling".Cryosphere 15.4(2021).
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